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Understanding Prediabetes Through Facebook: Pilot Study Protocol and Lessons Learned

机译:通过Facebook了解Prediapetes:试点研究议定书和经验教训

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Purpose/Background: Type 2 Diabetes is a serious contributor to mortality and morbidity. Rural populations (including those in Mountain West regions) exhibit greater health disparities than their urban counterparts for many conditions, including diabetes. It is therefore vital to address this important health issue, especially among rural populations. One way to address diabetes is with prevention, starting with enhanced detection of prediabetes. According to the CDC, more than 84 millions Americans (one in three adults) has prediabetes, but nine out of ten are not aware of their condition, which hampers prevention efforts. Infodemiology has been used successfully to track health information found on social media. Our project aims to find indicators of prediabetes through Facebook content, with a long-term goal of developing an effective social media screening tool for prediabetes. Materials & Methods: This study had an exploratory retrospective design (the study protocol has been published; Xu, Litchman, Geeet al., 2018 JMIR Research Protocols). Utilizing electronic medical records from a Mountain West region family medicine clinic, we recruited 17 patients diagnosed with prediabetes who were willing to share their Facebook posts. Participants completed a clinic session where they responded to a number of surveys (e.g., Facebook Intensity Scale, Prediabetes Online Community Engagement Scale, Computer-Mediated Social Support Scale) and provided us with their Facebook account information. We then accessed and coded all Facebook posts for the 6-month period surrounding their prediabetes diagnosis (3-months pre through 3-months post-diagnosis; see Figure 1). Coding included meta-data (e.g., time of post, post type), post text/visuals, social aspects of the post (e.g., comments, reactions, shares), and content of interest (e.g., health, physical symptoms, lifestyle factors, medical experiences, food etc.). Results: Descriptive information about participant demographics and their responses to surveys are provided (see Table 1). We are currently compiling the coded data and will use a mixed-method protocol for analyses. This includes both qualitative content analysis to identify themes as well as a quantitative approach to examine potential differences between the 3-months prediagnosis and the 3-months postdiagnosis for our participants. While we were able to code data for 17 patients, due to unanticipated barriers in recruitment and coding we did not meet our planned goal of 20 patients. To assist those planning on conducting this type of social media research, we will discuss some of these issues including the importance of having a large team of coders who can work simultaneously. Discussion/Conclusion: Data from this project should.
机译:目的/背景:2型糖尿病是对死亡率和发病率的严重贡献者。农村人口(包括山区地区的人口)比在许多条件包括糖尿病的情况下表现出更大的健康差异。因此,解决这一重要的健康问题至关重要,特别是在农村人口中。一种解决糖尿病的方法是预防,从增强的预先检测开始。根据CDC,超过840万名美国人(三分之一的成年人)有前奶油,但十分之九是不知道其条件,这妨碍了预防努力。 Infodemiology已成功用于跟踪社交媒体上的健康信息。我们的项目旨在通过Facebook内容查找Prediapetes的指标,具有为Prediapetes开发有效的社交媒体筛选工具的长期目标。材料与方法:本研究具有探索性回顾性设计(研究协议已发表;徐,洛奇曼,吉尼al。,2018年JMIR研究方案)。利用来自山区西区家庭医学诊所的电子医疗记录,我们招募了17名诊断患有愿意分享他们的Facebook帖子的前奶酪患者。参与者完成了一个诊所会议,在那里他们回应了许多调查(例如,Facebook强度刻度,Prediabetess Online Community订婚规模,计算机中学的社会支持规模),并为我们提供了他们的Facebook帐户信息。然后我们访问并编码所有Facebook帖子,为他们的预先审计诊断(3个月通过诊断后3个月;见图1)。编码包括元数据(例如,邮政,帖子类型),邮政文本/视觉,职位的社会方面(例如,评论,反应,股份)和兴趣内容(例如,健康,身体症状,生活方式因素,医疗经验,食物等)。结果:提供了有关参与人口统计数据的描述性信息及其对调查的回复(见表1)。我们目前正在编译编码数据,并将使用混合方法协议进行分析。这包括定性内容分析,以识别主题以及定量方法,以检查3个月的术前疾病和我们参与者迟交的3个月之间的潜在差异。虽然我们能够为17名患者进行编码数据,但由于招聘和编码的意外障碍,我们没有符合我们20名患者的计划目标。为了协助那些进行这种类型的社交媒体研究的计划,我们将讨论其中一些问题,包括拥有可以同时工作的大型编码器团队的重要性。讨论/结论:该项目的数据应该。

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